System and method for self-leveling heat sink for multiple height devices
A self-leveling heat sink includes a spring-arm device having at least one aperture and at least one spring-arm is coupled to a substrate. The substrate has at least one package mounted thereon, so that when the spring-arm device is mounted to the substrate the at least one package passes through the at least one aperture. A heat sink operable to remove heat from the at least one package has at least one heat sink post operable to receive a heat sink clip located at the distal end of each of the at least one spring-arms. Each of the at least one spring-arms extending from an inside edge of the at least one aperture and operable to couple the heat sink to the at least one package.
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This invention relates generally to energy removal from semiconductor devices, and more particularly to a system and method for a self-leveling heat sink for semiconductor devices.
BACKGROUND OF THE INVENTIONSemiconductor devices are generally manufactured by mounting multiple packages or devices onto a printed circuit board (PCB) substrate. In order to conduct heat from the individual semiconductor devices to a heat sink, the heat sinks generally need to be in contact with the individual packages. When a PCB or ASIC has packages of differing heights, the past solution has generally been to mount a heat sink onto the substrate in such a way that it is pressed down very tightly over some of the packages in order to ensure that the heat sink is in contact with all of the packages. This method has various disadvantages. For example, if the heat sink is mounted too tightly or with too much force onto the packages of greatest height measured from the substrate, in order to contact the packages with the lowest lowest height mounted on the same substrate, the force necessary to ensure the heat sink is contact with the lowest packages may result in crushing or otherwise damaging the packages of greatest height. Additionally, if the heat sink is mounted on the substrate such that the tallest packages are contacted, the shortest packages may not be in contact with the heat sink thus reducing the heat dissipation capabilities of the system.
SUMMARY OF THE INVENTIONIn accordance with embodiments of the invention, problems associated with the removal of heat from integrated circuit packages mounted on printed circuit boards (PCBs) are substantially reduced or eliminated. In one embodiment, a method includes coupling a spring-arm device to a substrate. The spring-arm device preferably has multiple apertures operable to accept packages to be passed through when the spring-arm device is mounted to the substrate. Additionally, the spring-arm device has at least one spring arm extending from an interior edge of each aperture, with a u-shaped or enclosed aperture at the distal end. The method also includes coupling at least one heat sink to the spring-arm device, so that a heat-sink post on one side of the heat sink may be inserted into the u-shaped opening or aperture at the distal end of the spring arm to retain the heat sink in position.
In another embodiment, a system is provided that includes a spring-arm device coupled to a substrate. Additionally, a heat sink having a heat-sink post located on one side is preferably inserted into a spring arm of the spring-arm device to retain the heat sink in position. The spring arms preferably extend from the interior edge of an aperture in the spring-arm device so that when the heat-sink post is inserted into the spring-arm device the heat sink is held in position over a package mounted on the substrate by spring pressure.
An advantage of the present invention includes increasing the amount of heat that can be dissipated from a PCB. Yet another advantage includes each package mounted on the substrate having a heat sink in contact therewith. Yet another advantage is the ability of the system to allow the size of each heat sink to vary according to the heat generated by the individual devices mounted on the substrate. Embodiments of the present invention may include some, none, or all of the enumerated advantages. Additional advantages will be apparent to those of ordinary skill in the art.
BRIEF DESCRIPTION OF THE DRAWINGSFor a more complete understanding of the present invention and the advantages thereof, reference is now made to the following description taken in conjunction with the accompanying drawings:
Integrated circuit devices are contained in packages which are subsequently mounted on printed circuit boards (PCBs) for electrical functioning. During operation, these semiconductor devices generate heat that must be dissipated to allow the semiconductor device to continue functioning properly. Accordingly, current methods of heat dissipation include mounting a heat sink in contact with the pagkages disposed on a substrate. This heat sink is generally mounted to the substrate so that the individual packages of the semiconductor device contact the heat sink. Often, the individual packages on the PCB have varying heights and dimensions, thus resulting in gaps of varying sizes between the packages and the heat sink surface. Additionally, when the heat sink is tightened over the packages in an effort to ensure that the heat sink contacts each of the packages to increase the heat dissipation capabilities of the system, the packages that are tallest, or that have the largest dimensions, are often damaged or crushed in an attempt to ensure that all of the packages are in contact with the heat sink.
The amount of pressure necessary to ensure adequate energy dissipation from a semiconductor device is preferably enough to ensure constant contact between a heat sink and a semiconductor device. When the devices of a PCB have varying dimensions, and/or varying heights, the only currently-available method of ensuring constant contact includes fabricating a custom-milled heat-sink.
At step 120, the spring-arm device and heat sink are coupled to the substrate. The spring arm device may be coupled to the substarte at step 120 using screws, rivets, clips, or any other suitable method.
The heat-sink device may be any type of device capable of removing heat, or energy, from the semiconductor device. Preferably, the heat-sink post has a radial arcuate groove normal to the longitudinal access of the post, and is preferably operable to receive a spring-arm clip, which may be u-shaped or comprised of an aperture within a distal end of the spring arm, such as a round or oblong aperture, and secured by a screw or other enlarged distal head inserted into the heat-sink post. At step 130, the assembly is preferably inspected to ensure that the heat sink is in contact with the package on the substrate. If, at step 130, the heat sink is not in contact with the package mounted on the substrate, the spring arms or arm may be adjusted so that the heat sink is in contact with the package. This adjustment may be performed by adjusting the heat-sink post on the heat sink, or by adjusting the angle of the spring arm to ensure that the spring-arm pressure exerted on the heat sink by the spring arm is sufficient to maintain contact of the heat sink with the package. Once the heat sink is in contact with the package and held in place by the spring arms, at step 150 the method is complete.
In the embodiment shown, the plurality of apertures 220 of spring-arm device 210 are positioned directly over packages 430 that may pass therethrough upon mounting spring-arm device 210 to substrate 410. Preferably, apertures 220 of spring-arm device 210 are of sufficient dimensions to allow spring arms 224 having spring-arm clips 226 at a distal end thereof to be located some distance away from packages 430 when spring-arm device 210 is mounted to substrate 410.
Although the present invention has been described in detail, it should be understood that various changes, substitutions, and alterations may be made, without departing from the spirit and scope of the present invention as defined by the claims.
Claims
1. A system for removing energy from a semiconductor, comprising:
- a spring-arm device operable to be coupled to a substrate, the spring-arm device comprising at least one aperture operable to allow at least one package mounted on a substrate to pass through when the spring-arm device is coupled to the substrate;
- a heat sink operable to remove heat from the at least one package, the heat sink comprising at least one heat sink post, the heat sink post comprising a recessed portion operable to receive a heat-sink clip; and
- at least one spring-arm extending from an inside edge of the aperture, the spring-arm comprising the at least one heat-sink clip at the distal end of the spring-arm and operable to retain a heat-sink post, the rentention of the heat sink post operable to couple the heat sink to the at least one package.
2. The system of claim 1, wherein the spring-arm device is a sheet of punched spring-steel.
3. The system of claim 1, wherein the spring-arm device is coupled to the substrate with at least one screw.
4. The system of claim 1, wherein the spring-arm device is coupled to the substrate with epoxy.
5. The system of claim 1, wherein the spring-arm device is coupled to the substrate with an adhesive.
6. The system of claim 1, wherein the heat sink clip comprises a u-shaped portion at the distal end of the spring arm.
7. The system of claim 1, wherein the at least one heat sink clip comprises an enclosed aperture at the distal end of the at least one spring arm.
8. The system of claim 1, wherein the recessed portion of the at least one heat sink post comprises an arcuate groove substantially normal to the longitudinal axis of the at least one heat sink post.
9. The system of claim 1, wherein the recessed portion of the at least one heat sink post comprises an arcuate region bounded by the distal end of the at least one heat sink post and a post inserted into the distal face of the at least one heat sink post along the longitudinal axis of the heat sink post, the post having an enlarged distal end.
10. The system of claim 9, wherein the at least one heat sink clip comprises an enclosed aperture at the distal end of the at least one spring arm, the at least one heat sink clip coupled to the at least one heat sink post by inserting the post through the aperture into the distal face of the at least one heat sink post along the longitudinal axis of the heat sink post.
11. The system of claim 1, wherein the at least one aperture comprises a plurality of apertures, each of the plurality of apertures operable to allow one of the at least one packages mounted on the substrate to pass through when the spring-arm device is coupled to the substrate.
12. The system of claim 11, wherein the at least one heat sink comprises a plurality of heat sinks, each of the plurality of heat sinks corresponding to one of the at least one packages mounted on the substrate.
13. A method for removing heat from a semiconductor device, comprising:
- coupling a spring-arm device to a substrate, the spring-arm device comprising: at least one aperture operable to allow at least one package mounted on the substrate to pass through; and at least one spring arm extending from an edge of each of the at least one apertures, the at least one spring arm further comprising a spring-arm clip at a distal end; and
- coupling at least one heat sink to the spring-arm device, the at least one heat sink comprising at least one heat sink post operable to be coupled to the at least one spring-arm clip, wherein the at least one heat sink is coupled to the spring-arm device to allow the at least one heat sink to contact the at least one package mounted on the substrate.
14. The method of claim 13, wherein the at least one heat sink comprises a plurality of heat sinks, and wherein the at least one package comprises a plurality of packages, each of the plurality of heat sinks operable to be coupled to one of the plurality of packages.
15. The method of claim 13, wherein the spring-arm clip comprises a u-shaped portion at the distal end of the at least one spring-arm, the spring-arm clip operable to be received by a radial arcuate groove about the longitudinal axis of the at least one heat sink post.
16. The method of claim 13, wherein the spring-arm clip comprises an enclosed aperture at the distal end of the at least one spring-arm, the spring-arm clip operable to be coupled to a radial arcuate groove in the at least one heat sink post.
17. The method of claim 16, further comprising securing the at least one spring-arm clip to the at least one heat sink post using an endcap, the endcap having a diameter greater than the diameter of the enclosed aperture.
18. The method of claim 13, wherein the spring-arm device further comprises a punched spring-steel plate, wherein the at least one aperture and the at least one spring arm comprise portions of the spring-steel plate.
19. The method of claim 13, wherein the at least one aperture comprises a plurality of apertures, each aperture operable to allow at least one package mounted to the substrate to pass through when the spring-arm device is coupled to the substrate.
20. The method of claim 13, wherein the at least one heat sink is coupled to the spring-arm device prior to coupling the spring-arm device to the substrate.
21. A system for removing energy from a semiconductor device, comprising:
- a spring-arm plate comprising at least one spring arm having a spring-arm clip at a distal end, wherein the spring-arm plate is coupled to a substrate having at least one package mounted thereon, and wherein the spring-arm plate has at least one aperture operable to allow the at least one package to pass through; and
- at least one heat sink comprising at least one heat-sink post corresponding to the at least one spring arm clip, the at least one heat sink coupled to the spring-arm clip, wherein the spring-arm clip maintains contact between the at least one heat sink and the at least one package by the spring-arm pressure applied to the at least one heat sink post.
Type: Application
Filed: Dec 31, 2003
Publication Date: Jul 7, 2005
Patent Grant number: 6950310
Applicant:
Inventor: Darvin Edwards (Garland, TX)
Application Number: 10/749,609